A metal gasket is disclosed in which a shim laid on a bead plate around bore apertures in the bead plate is varied in radial width along the peripheries of the bore apertures to compensate for sealing stress circumferentially of the bore apertures. The metal gasket is composed of a bead plate with beads around its bore apertures and a shim including annular areas defining bore apertures and bridges connecting together any two adjoining annular areas. The shim around the bore apertures has a radial width at the bridges, which is substantially equal with a width across a web defined between any adjoining cylinder bores formed in mating surfaces of the cylinder block and cylinder head. Moreover, the shim at areas other than the bridges is varied continuously in its radial width in a range of from a flat area around the bore apertures to an area corresponding to the bead on the bead plate. Variations in radial width of the shim makes compensate partly for a sealing stress distribution around the first bore apertures.
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1. In a metal gasket adapted to be used interposed between mating surfaces of a cylinder block and cylinder head held together with tightening bolts, which comprises a bead plate made with first bore apertures and beads extending around the first bore apertures, each to each aperture, and a shim made with second bore apertures in alignment with the first bore apertures and laid on the bead plate, the shim being composed of areas extending around the second bore apertures and bridges connecting the adjoining areas with each other;
the improvement wherein the shim around the second bore apertures has a radial width at the bridges between any adjoining second bore apertures, which is substantially equal with or less than a width across a web defined around any cylinder bore formed in mating surfaces of the cylinder block and cylinder head, and the shim at areas other than the bridges is varied continuously in its radial width in a range of from a flat area around the first bore apertures in the bead plate to an area corresponding the bead on the bead plate, whereby variations in radial width of the shim around the second bore apertures result in compensating partly for a sealing stress distribution around the first bore apertures, and wherein the shim, when relieved from tightening load, has a minimum width reaching an inside root of the bead nearest the first bore aperture, with beginning at a peripheral edge of the second bore aperture, while has a maximum width reaching any one of an area where the shim is beyond the inside root of the bead nearest the first bore aperture, but short of an outside root of the bead, with beginning at the peripheral edge of the second bore aperture, and another area where the shim is beyond the outside root of the bead, with beginning at the peripheral edge of the second bore aperture.
3. In a metal gasket adapted to be used interposed between mating surfaces of a cylinder block and cylinder head held together with tightening torts, which comprises a bead plate made with first bore apertures and beads extending around the first bore apertures, each to each aperture, and a shim made with second bore apertures in alignment with the first bore apertures and laid on the bead plate, the shim being composed of areas extending around the second bore apertures and bridges connecting the adjoining areas with each other;
the improvement wherein the shim around the second bore apertures has a radial width at the bridges between any adjoining second bore apertures, which is substantially equal with or less than a width across a web defined around any cylinder bore formed in mating surfaces of the cylinder block and cylinder head, and the shim at areas other than the bridges is varied continuously in its radial width in a range of from a flat area around the first bore apertures in the bead plate to an area corresponding the bead on the bead plate, whereby variations in radial width of the shim around the second bore apertures result in compensating partly for a sealing stress distribution around the first bore apertures, and wherein the shim, when relieved from tightening load, has a minimum width extending beyond the outside root of the bead nearest the first bore aperture, with beginning at a peripheral edge of the second bore aperture, while has a maximum width reaching any one of an area where the shim is beyond the outside root of the bead nearest the first bore aperture, with beginning at the peripheral edge of the second bore aperture, and another area where the shim is far beyond the outside root of the bead, covering over partially or entirely another bead remote away from the first bore aperture, with beginning at the peripheral edge of the second bore aperture.
2. A metal gasket constructed as defined in
4. A metal gasket constructed as defined in
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1. Field of the Invention
The present invention relates to a metal gasket in which a shim is laid on a bead plate.
2. Description of the Prior Art
Conventionally, there has been well known a metal gasket having a shim or spacer to increase a thickness of an area around a bore aperture. Such metal gaskets are disclosed in, for example, Japanese Patent Laid-Open Nos. 155375/1987 and 219572/1992.
Moreover, a metal gasket in which a thick member or shim is interposed between base plates is disclosed in a variety of prior documents, for example, Japanese Patent Laid-Open Nos. 175579/1992, 219572/1992, 207672/1994, 110827/1998 and 241769/1999.
As the metal gaskets disclosed in the prior documents enumerated above are of a type in which no fold is prepared around the bore aperture, a shim of uniform thickness is arranged on the base plate or interposed between the confronting base plates around the bore apertures to help ensure the compensation for difference in sealing stress, which might otherwise occur between the areas around the bore apertures and other major area including therein water holes, oil openings and the like. In addition, any metal gasket of the type disclosed in the documents recited above employs a thick spacer disposed between the base plates or a shim of uniform thickness secured on the base plate, thereby to compensate for irregularities in the mating surfaces and/or local reduction in sealing stress, which might be caused between the confronting surfaces of the cylinder head and cylinder block owing to the repeated expansion and contraction.
Disclosed in Japanese Patent Laid-Open No. 265022/1994 is a metal gasket in which an auxiliary plate or intermediate shim disposed between the confronting base plates extends around the bore apertures and has a peripheral dimension that is varied within a range of the width across the bead according to the gasket design requirements and further the bead is formed linearly at an area between the adjoining bore apertures. In the prior metal gasket constructed as described just above, the perimetric edge of the auxiliary plate always exists in the width across the bead on the base plate and also the auxiliary plate is constant in its peripheral dimension or diametric width around the bore aperture, which is defined depending on the gasket design requirements. No auxiliary plate extends over the entire width across the associated bead. Besides, when having squeezed strongly the prior metal gasket in which the auxiliary plate extends to cover the major of the width across the bead, the single bead is deformed compressively into two rows of bead, thus resulting in increasing the contacting area with the base plates to enhance the tight sealing around the bore apertures.
Either as described just above or as shown in
There is no prior metal gasket in which the auxiliary plate or shim varies in radial width circumferentially around the bore aperture to compensate for variations in sealing stress, with taking into consideration a correlation between the sealing stress and the radial width of the shim. In the metal gasket in which a shim is laid on a bead plate, moreover, the shim uniform in radial width throughout around the bore aperture is subjected to such sealing stress distribution that the stress, though becoming high at areas neighboring the tightening holes, lowers at other areas remote from the tightening holes. That is to say, the metal gasket squeezed between the cylinder head and the cylinder block experiences much tightening force and correspondingly much affection of explosion in the engine at the areas nearby the tightening holes in which the hold-down bolts fit to clamp the metal gasket. Thus, the sealing stress around the bore apertures also inevitably becomes much higher at the areas neighboring the tightening holes than at the residual areas. After all, there arises a major problem in which the sealing stress occurring in the metal gasket can not kept uniform or constant throughout around the bore apertures.
Latest engines require low rigidity or/and high combustion pressure, but they frequently involve a major problem to be solved, in which minute variations in the sealing stress occurring circumferentially around the bore apertures has an influence undesirable from the view point of sealing performance of the metal gasket. That problem is much liable to arise in, especially, the metal gasket that disposed between the confronting cylinder head and block of the closed-deck type engine, in which the tightening load is selected at somewhat high level.
The present invention has as its primary object to overcome the problem described just above and, especially, the provision of a metal gasket that may be preferably used in a closed-deck type engine, which is made compact or slim in construction, light in weight and also tough against high combustion pressure. More particularly, the metal gasket of the present invention is simple in construction and composed of a bead plate and a shim laid on the bead plate, the shim being changed in radial width circumferentially to partly compensate for a sealing stress distribution around a bore aperture formed in the bead plate. The radial width of the shim laid on the bead plate is made varied continuously around the bore aperture in the bead plate, thereby balancing minute variations in sealing stress to help ensure the sealing pressure distribution that is uniform circumferentially of the bore aperture.
The present invention is concerned with a metal gasket adapted to be used interposed between mating surfaces of a cylinder block and cylinder head held together with tightening bolts, which comprises a bead plate made with first bore apertures and beads extending around the first bore apertures, each to each aperture, and a shim made with second bore apertures in alignment with the first bore apertures and laid on the bead plate, the shim being composed of areas extending around the second bore apertures and bridges connecting the adjoining areas with each other; the improvement wherein the shim around the second bore apertures has a radial width at the bridges between any adjoining second bore apertures, which is substantially equal with a width across a web defined around any cylinder bore formed in mating surfaces of the cylinder block and cylinder head, and the shim at areas other than the bridges is varied continuously in its radial width in a range of from a flat area around the first bore apertures in the bead plate to an area corresponding the bead on the bead plate, whereby variations in radial width of the shim around the second bore apertures result in compensating partly for a sealing stress distribution around the first bore apertures.
In accordance with an aspect of the present invention, an improved metal gasket is disclosed, wherein the shim is defined such that its area around the second bore apertures, when relieved from tightening load, extends in radial width from peripheral edges of the second bore apertures to a radial area covering at least an range corresponding any bead nearest the first bore apertures, while under tightening load extends over inside roots of the beads even at its minimum radial width.
In accordance with another aspect of the present invention, an improved metal gasket is disclosed, wherein the shim around the second bore apertures has a radial width that is made minimum at areas neighboring tightening holes formed in the bead plate for fitting the bolts.
In the metal gasket of the present invention constructed as described just above, the sealing stress occurring at the beads extending around the bore apertures may be properly, easily compensated or regulated with only changing the radial width of the shim laid on the bead plate at the areas around the bore apertures, without requiring altering partly the thickness of the shim and/or the height of the bead raised on the bead plate. The shim provided in the present invention is successful in making the sealing stress distribution around the bore aperture regulate minutely along the periphery of the bore aperture, thereby compensating easily for the unbalanced distribution of the sealing stress about the bore aperture to keep the desired sealing stress uniform circumferentially of the bore aperture. That is to say, according to the metal gasket of the present invention, the proper regulation of the sealing stress happening in the metal gasket may be easily realized by merely varying partly the radial width of the shim along the periphery of the bore aperture.
Generally speaking about most metal gaskets, the tightening force of bolts to clamp together the cylinder block and cylinder head makes much exertion on the bead plate at the areas neighboring the tightening holes for the bolts. Accordingly, the reduction of the shim in radial width at the areas neighboring the tightening holes results in decreasing the sealing stress happening owing to the shim, thus allowing the sealing stress to render uniform throughout the metal gasket. This construction of the shim of the present invention is preferably applied to, especially, the closed-deck type engine to regulate the sealing stress in the metal gasket.
In another metal gasket in which the shim is disposed between the confronting bead plates, the shim has no irregularity on its own opposite surfaces and, therefore, makes it possible to reduce overall height or thickness of the gasket and also to keep small the variations in the clearance between the cylinder block and cylinder head, which might happen owing to the pressure inside the cylinder bore. In addition, the metal gasket of the present invention, as having the shim in place of folded portions, is simple in construction.
The metal gasket according to the present invention will be in detail explained below with reference to the preferred embodiments of the present invention shown in accompanying drawings, where like reference numerals designate identical or corresponding parts throughout the several views.
A metal gasket according to the present invention is to be used disposed between mating surfaces, not shown, of a cylinder block and a cylinder head, which are jointed together with tightening bolts. The metal gasket is comprised of a bead plate 1 provided thereon with corrugations, or beads 7, which extend around cylinder bore apertures, or first bore apertures 3 made in the bead plate 1, and a shim 2 laid on the bead plate 1, the shim being composed of annular areas to define second bore apertures 6 in alignment with the first bore apertures 3 and bridge areas 4 connecting the adjoining annular areas with one another. The bead plate 1 is also provided therein with tightening holes 5 for hold-down bolts, oil holes 20, water holes 21, additional hole 22 doubling as a tightening hole and as a oil passage, and so on.
With the shim 2 configured as shown in
In the metal gasket discussed here, the bead 7 on the bead plate 1 is kept substantially uniform around the bore aperture 3, and not changed locally in contour, for example, in height circumferentially of the first bore aperture 3. Nevertheless, the bead 7 on the bead plate 1 is allowed to change locally in its width in cross section if desired in order to compensate minutely for the sealing stress. The bead 7 is shown formed in an annular pattern viewed in its top plan, but is not limited to such a pattern and may be somewhat modified depending on the shapes of the first bore apertures 3, the positions of the tightening holes 5 and corresponding minute variations in sealing stress to be balanced.
The shim 2 is produced by shearing a sheet of uniform thickness to a desired shape and size in which the bridge area 4 connects together any two adjoining annular areas extending around the associated bore apertures 3. The annular areas of the shim 2 extending around the bore apertures 3 in the bead plate 1 may be shaped either homogeneous or heterogeneous with each other in configuration. Moreover, the shim 2 to be used in, for example, either 3-cylinder engine or 4-cylinder engine has not to make identical the configuration at the opposite sides of the individual cylinder. The configuration of the shim 2 formed by lines joining the peripheries at the wider radial areas around the individual bore aperture 3 of the bead plate 1 may be made in an arbitrary shape such as polygon, quadrangle, and so on, other than substantially circular shape. On the other hand, the bead plate 1 is made of a metallic sheet having elasticity, while the shim 2, or an intermediate plate 10 in
The bead plate 1 and shim 2 constructed as in the above may be combined in various embodiments of the metal gasket. For example, a metal gasket shown in
In another embodiment of the metal gasket shown in
An alternative embodiment of the metal gasket shown in
In a further another embodiment of the metal gasket in
As an alternative, the metal gasket shown in
Besides the embodiments constructed as described above, the metal gasket of the present invention may incorporate therein a bead plate 1 in which the adjacent beads 7 exist independently of each other at an area between the adjoining bore apertures 3 in the bead plate 1, and not merge together into a single bead 7 as shown in
In the metal gasket of the present invention, the bridge area 4 of the shim 2 may be made somewhat less in width than the web between the adjoining second bore apertures 6 in the shim 2. Any of bead plate 1, shim 2 and intermediate plate 10 may be subjected to desirable surface-treatment. The bead plate 1, shim 2 and intermediate plate 10 may be selectively coated on their opposite surfaces with other substances, depending upon the view point of sealing performance, restrictions on manufacturing process and production costs. The intermediate plate 10 is usually made great in thickness, compared with both the bead plate 1 and the shim 2. In the metal gasket of this invention, both the shim 2 and the intermediate plate 10 should not be limited in thickness and formed adequately in accordance with engine design to which the metal gasket is applied.
In the metal gasket disclosed here, the assembly of the bead plate 1 with the shim 2 may be accomplished with caulking, eyelets, riveting, partial folding, partial welding, and so on. While the bead plate 1 and the shim 2 are preferably joined with mechanical caulking, it will be appreciated that the shim is alternatively provided with lugs for caulking as in the shim disclosed in Japanese Patent Laid-Open No. 241769/1999.
Embodiments of the metal gasket of the present invention will be explained hereinafter in detail in reference to
Referring now to
The shim 2, as illustrated in detail in
The metal gasket, as in
Referring next to
In the embodiments of the metal gasket illustrated in
In the metal gaskets labeled a1, b1, c1, d1, e1 and f1 in
The bead plate 1 in the metal gasket labeled a1 and a2 in
Referring next to
Referring now to
Any metal gasket according to embodiments of the present invention in
Referring to
The full bead 7a, though not shown, may be formed in place of the half beads 7b. A single row of the half bead 7b can be also used with the same effect to provide the corrugation resembling the full bead 7a at the center of the area between the adjoining bore apertures 3. As an alternative, the beads 7b may join together in a common bead in the area between the adjoining bore apertures 3. The radial width of the shim 2 around any bore aperture 6 is in general allowed to vary arbitrarily within a range of about from 1 mm to 5 mm. In most small engines of about 0.5 to 4.0 ml displacement, since a flange width allowed for ensuring the effective sealing between the cylinder head and cylinder block is limited to from about 5 to 10 mm, the radial width of the shim 2 should be preselected to such minimal width that the area in which the shim 2 is present spans at least the entire width of a row of the bead nearest the bore hole 3. In addition, the radial width of the shim 2 is preferably not more than the effective sealing width in the flanges.
Referring next to
Referring to
Any metal gasket illustrated in
Any metal gasket illustrated in
Any metal gasket shown in
Any metal gasket shown in
Referring to
While the present invention has been described in its preferred embodiments, it is to be distinctly understood that the invention is not limited thereto but may be otherwise variously embodied within the scope of the following claims.
Miyamoto, Yasuhiro, Furuta, Yutaka, Sekioka, Kenichi, Fukui, Yuji
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Executed on | Assignor | Assignee | Conveyance | Frame | Reel | Doc |
Jun 20 2000 | MIYAMOTO, YASUHIRO | NIPPON GASKET CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 012828 | /0986 | |
Jun 20 2000 | FUKUI, YUJI | NIPPON GASKET CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 012828 | /0986 | |
Jun 20 2000 | SEKIOKA, KENICHI | NIPPON GASKET CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 012828 | /0986 | |
Jun 20 2000 | FURUTA, YUTAKA | NIPPON GASKET CO , LTD | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 012828 | /0986 | |
Jun 29 2000 | Nippon Gasket Co., Ltd. | (assignment on the face of the patent) | / |
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